Dual Battery Isolator Sizing Calculator

Dual Battery Isolator Sizing Calculator

Estimate isolator continuous and surge amps, safe fuse sizing, cable gauge, and voltage drop for camper auxiliary battery charging.

🚙Dual-battery presets
System inputs
Use the nameplate or service manual rating, not idle output.
Lights, fans, defrost, ECU, fuel pump, and trailer loads.
For smart isolator relays, this is the expected bulk current.
Momentary closing, combiner, or crank-assist rating.
Calculator doubles this for positive plus negative path.

Recommended dual battery sizing

Recommended isolator
--
continuous / surge
Recommended cable
--
copper AWG
Fuse sizing
--
near each battery
Estimated voltage drop
--
at target current
Enter your system values and calculate.
📊Battery chemistry spec grid
0.15C
Flooded target
0.30C
AGM target
0.50C
LiFePO4 target
125%
Fuse baseline
🔌Copper cable voltage drop table
Copper cable Ohms per 1000 ft Planning ampacity Typical isolator use
10 AWG0.99930 ASmall trailer maintainer
8 AWG0.62850 ACompact camper charge line
6 AWG0.39570 ACommon van auxiliary bank
4 AWG0.249100 ALonger rear battery run
2 AWG0.156150 AHigh current AGM bank
1/0 AWG0.098200 ALarge combiner or inverter bank
2/0 AWG0.078250 AHeavy overland build
4/0 AWG0.049350 AVery high current trunk line
🔋Chemistry charge-current guide
Chemistry Bulk current guide Voltage behavior Isolator note
Flooded lead-acid0.10C to 0.15CAccepts less as SOC risesSimple VSR often works when vented
Gel lead-acid0.15C to 0.20CSensitive to over-voltageKeep charging voltage conservative
AGM lead-acid0.20C to 0.30CHigher acceptance when lowGood match for relay isolators
Lead carbon0.30C to 0.40CBetter partial-SOC cyclingConfirm maker charge limits
LiFePO4 lithium0.30C to 0.50CCan hold high currentUse DC-DC control or limiter
Isolator and fuse rating table
Target charge amps Minimum continuous isolator Suggested surge rating Common fuse range
20 A40 A80 A30 A to 40 A
40 A80 A120 A50 A to 70 A
60 A100 A150 A80 A to 100 A
100 A150 A250 A125 A to 150 A
150 A200 A350 A175 A to 225 A
200 A300 A500 A250 A to 300 A
🚗Common dual-battery examples
Vehicle setup Aux bank Charge target Typical hardware
Weekend camper van100 Ah AGM30 A80 A relay, 6 AWG short run
Truck camper200 Ah AGM60 A120 A isolator, 4 AWG cable
Lithium overland rig200 Ah LiFePO450 A limitedDC-DC charger, 6 or 4 AWG
Large expedition build300 Ah lithium100 A limited200 A combiner, 2 AWG cable
💡Planning tips
Fuse placement: Put a properly sized fuse or breaker close to each battery positive terminal because either battery can feed a cable fault.
Lithium caution: A plain relay isolator can allow a low lithium bank to pull hard from the alternator. Use current limiting when the battery maker requires it.

You buy the van, you install the lithium bank. After driving to camp, you realize you has forty percent left on your house battery. More than likely, it’s not the battery but the wiring connecting the alternator to the battery. Matching the battery chemistry with the cable tolerance for electrons is less about finding the biggest relay and more about sizing a dual battery isolator. Too big of a fuse doesn’t protect the circuit; too small of an isolator shuts down too soon, preventing charge. Melting happens if wire isn’t thick enough. Then you won’t have a start or a fridge.

All you do is plug in your target current, the length of wire you’re using, and voltage of your system. The rest is left up to the calculator. It figures out the current limit reduction and voltage drop factor for you. Most DIY’ers mess this part up.

How to Size Your Wiring and Fuse

You have to realize your alternator isn’t some magic box that makes infinite current. Yes, it spits out x amount of current but a portion of that get consumed by the vehicle. Fuel pump, ECU, fans, lights, etc., all consume current before it can be routed to the auxiliary bank. So you take the rated output from the alternator and minus out what’s used by the vehicle (reserve) to get your true surplus. Your surplus equals your ceiling; everything else in build has to stay below it.

The lower limit is determined by battery chemistry. Flooded lead-acid batteries takes time to charge. They don’t tolerate big surges well, as they’ll degrade their plates or just gas-out. You have to charge them slowly (usually ~15% of their capacity). AGMs are better (30%), and lithium batteries even better (often 50%+), but will require accurate voltage cutoffs. For instance if your setup has a lithium bank, using a basic voltage-sensing relay can cause it to be overcharged since the relay doesn’t know when to quit pushing current into it. The calculator considers this by only recommending charge targets right for the chosen chemistry. It makes a difference in battery longevity.

The way power gets there physically is through cable gauge. Voltage drop, which few folks consider when purchasing cable, happens with long cables made from small wire. That’s because any wire have some resistance, it’s like having a resistor in your circuit. So the output voltage of the alternator isn’t what you get at the battery. And if the wire size is insufficient, the alternator may have to work harder than needed, or the charger thinks the battery is charged when it really isn’t. The tool determines how big the wire needs to be based off the one-way distance and the desired percentage of voltage loss. It doubles the length inside because power flows both ways… Out and then back. That round trip lowers the efficiency.

The last safety net is fusing. Because a short on either side might be the cause, you must fuse near the positive terminal of every battery. A good rule is to size the fuse for 125% of its continuous current draw. That way, it won’t blow during normal fluctuations, but will trip immediately with a dead short. The calculator bases the fuse rating on the maximum capacity of your cable and the target current. That means the fuse will always blow before the wire overheats.

This equation also depends on heat; as alternators becomes warm, they also become less efficient. If you’re crawling across a trail on a hot day, your alternator bay is going to be suffocating. By lowering the projected output based on surrounding conditions, the calculator accounts for efficiency loss. You shouldn’ of plan on getting a maximum output that you won’t actualy get in real life. Under promise, over deliver.

On the page it’s laid out clearly in the reference table where you’ll see examples of common setups ranging from the weekend van to a serious expedition rig. A big battery doesn’t necessarily need a big isolator. What it does mean is it takes a long time to charge. The isolator only has to handle what the battery accepts and the alternator can give it.

In summary, however, it comes down to restriction and flow. You need thick enough wire to carry current without losing it, a sensitive fuse that catches faults, and an isolator sturdy enough to remain closed. The sum total is the electrons flowing freely. If not, there will be voltage drop, heat, and a dead battery.

Follow the calculator’s recommendations initially, but test for physical fit of terminals and quality of the connection. Nothing is better than a perfect calculation if the ring terminal do not seat properly.

Dual Battery Isolator Sizing Calculator

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